Comparing GHZ-Based Strategies for Multipartite Entanglement Distribution in 2D Repeater Networks
Mohadeseh Azari, Amy Babay, Prashant Krishnamurthy, Kaushik Seshadreesan

TL;DR
This paper compares two strategies for distributing multipartite GHZ entanglement in 2D quantum repeater networks, analyzing their performance to identify optimal methods for long-distance quantum communication.
Contribution
It introduces a comparative analysis of GHZ distribution strategies with and without quantum memories, evaluating their suitability for 2D quantum repeater architectures.
Findings
Memory-assisted strategy scales linearly with clients
Memoryless GHZ measurement strategy offers different performance trade-offs
Conditions identified where each strategy enhances network range
Abstract
We conduct a comparative study to determine the initial quality necessary to extend the distance range of an -qubit GHZ state (the parent state) using two-dimensional repeaters. We analyzed two strategies for distributing initial GHZ states using a centralized quantum switch to determine if any of the strategies show benefits: i) A strategy that employs quantum memories at the switch to retain quantum states entangled with each client node, where memory usage at the switch scales linearly with the number of clients, and ii) A strategy predicated on GHZ measurements at the switch node without reliance on memory assistance. In the former scenario, the switches generate GHZ states and teleport them to the clients by utilizing remote Bell pairs that are asynchronously generated and stored in memory. Conversely, in the latter scenario, the switches perform GHZ projective measurements on…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum Computing Algorithms and Architecture · Quantum optics and atomic interactions
